Machine Learning for Adaptive Many-Core Machines - A Practical Approach
Book Details
Format
Hardback or Cased Book
Book Series
Studies in Big Data
ISBN-10
3319069373
ISBN-13
9783319069371
Publisher
Springer International Publishing AG
Imprint
Springer International Publishing AG
Country of Manufacture
CH
Country of Publication
GB
Publication Date
Jul 16th, 2014
Print length
241 Pages
Weight
532 grams
Dimensions
16.30 x 24.20 x 1.90 cms
Product Classification:
Operational researchArtificial intelligenceArtificial intelligence (AI)
Ksh 16,200.00
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The overwhelming data produced everyday and the increasing performance and cost requirements of applications are transversal to a wide range of activities in society, from science to industry. In particular, the magnitude and complexity of the tasks that Machine Learning (ML) algorithms have to solve are driving the need to devise adaptive many-core machines that scale well with the volume of data, or in other words, can handle Big Data. This book gives a concise view on how to extend the applicability of well-known ML algorithms in Graphics Processing Unit (GPU) with data scalability in mind. It presents a series of new techniques to enhance, scale and distribute data in a Big Learning framework. It is not intended to be a comprehensive survey of the state of the art of the whole field of machine learning for Big Data. Its purpose is less ambitious and more practical: to explain and illustrate existing and novel GPU-based ML algorithms, not viewed as a universal solution for the Big Data challenges but rather as part of the answer, which may require the use of different strategies coupled together.
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